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Updated: Jun 30, 2025

Characterizing Exon Skipping Efficiency in DMD Patient Samples in Clinical Trials of Antisense Oligonucleotides
Published on: May 7, 2020
Clinical and genetic interpretation of uncertain DMD missense variants: evidence from mRNA and protein studies
Zhiying Xie1, Chang Liu1, Haiyan Yu2
1Department of Neurology, Peking University First Hospital, No. 8 Xishiku Street, Xicheng District, Beijing, 100034, China.
Background:
Pathogenic missense variants in the dystrophin (DMD) gene are rarely reported in dystrophinopathies. Most DMD missense variants are of uncertain significance and their pathogenicity interpretation remains complicated. We aimed to investigate whether DMD missense variants would cause aberrant splicing and re-interpret their pathogenicity based on mRNA and protein studies.
Methods:
Nine unrelated patients who had an elevated serum creatine kinase level with or without muscle weakness were enrolled. They underwent a detailed clinical, imaging, and pathological assessment. Routine genetic testing and muscle-derived mRNA and protein studies of dystrophin and sarcoglycan genes were performed in them.
Results:
Three of the 9 patients presented with a Duchenne muscular dystrophy (DMD) phenotype and the remaining 6 patients had a suspected diagnosis of Becker muscular dystrophy (BMD) or sarcoglycanopathy based on their clinical and pathological characteristics. Routine genetic testing detected only 9 predicted DMD missense variants in them, of which 6 were novel and interpreted as uncertain significance. Muscle-derived mRNA studies of sarcoglycan genes didn't reveal any aberrant transcripts in them. Dystrophin mRNA studies confirmed that 3 predicted DMD missense variants (c.2380G > C, c.4977C > G, and c.5444A > G) were in fact splicing and frameshift variants due to aberrant splicing. The 9 DMD variants were re-interpreted as pathogenic or likely pathogenic based on mRNA and protein studies. Therefore, 3 patients with DMD splicing variants and 6 patients with confirmed DMD missense variants were diagnosed with DMD and BMD, respectively.
Conclusion:
Our study highlights the importance of muscle biopsy and aberrant splicing for clinical and genetic interpretation of uncertain DMD missense variants.
Insights
Pathogenic interpretation of uncertain dystrophin (DMD) gene missense variants is complex. This study shows aberrant splicing can reclassify these variants, improving diagnosis of Duchenne muscular dystrophy (DMD) and Becker muscular dystrophy (BMD).
Area of Science:
- Genetics
- Molecular Biology
- Neuromuscular Disorders
Background:
- Pathogenic missense variants in the dystrophin (DMD) gene are infrequently reported in dystrophinopathies.
- The pathogenicity of most DMD missense variants remains uncertain and difficult to interpret.
- Investigating aberrant splicing is crucial for re-evaluating the significance of these variants.
Purpose of the Study:
- To determine if DMD missense variants can cause aberrant splicing.
- To re-interpret the pathogenicity of DMD missense variants using mRNA and protein studies.
- To improve diagnostic accuracy for patients with suspected dystrophinopathies.
Main Methods:
- Enrolled nine unrelated patients with elevated serum creatine kinase.
- Performed detailed clinical, imaging, and pathological assessments.
- Conducted routine genetic testing, and muscle-derived mRNA and protein studies for dystrophin and sarcoglycan genes.
Main Results:
- Routine genetic testing identified 9 predicted DMD missense variants, 6 novel and of uncertain significance.
- Dystrophin mRNA studies revealed 3 variants caused aberrant splicing, leading to frameshift variants.
- All 9 DMD variants were re-classified as pathogenic or likely pathogenic, enabling accurate DMD/BMD diagnoses.
Conclusions:
- Aberrant splicing is a key mechanism for pathogenicity in seemingly uncertain DMD missense variants.
- Muscle biopsy and mRNA studies are essential for accurate genetic interpretation in dystrophinopathies.
- This approach enhances the clinical and genetic diagnosis of Duchenne and Becker muscular dystrophies.
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